Search PubMed⌕ Search

SEARCH · Search PubMed

Results for “Complement C2”

Search indexed PubMed citations on genomics, clinical trials, systematic reviews and public health. Explore titles, authors and supplied subject terms, then open the PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 1,513 records · Page 84Linked to original sources

Interactions of C-reactive protein with the complement system. I. Protamine-induced consumption of complement in acute phase sera.

Protamine sulfate was found to consume large amounts of C selectively during preincubation with sera of individuals in the "acute phase". Marked depletion of C1, C4, and C2 with minimal, if any, depletion of C3-9, was observed. The consumption was time and temperature dependent, occurring most rapidly and extensively at 37 degrees C, 0.10 M relative salt concentration and pH 7.5-8.0; it required calcium ions. It was mediated by a heat-stable nondialyzable factor which separated with C-reactive protein (CRP) during fractionation and purification, correlated with serum CRP levels, and, like other known reactivities of CRP, was inhibited by phosphoryl choline. Preparations of CRP purified either from serum or ascites resulted in consumption of large amounts of C1, C4, and C2 when preincubated with normal serum and protamine. We conclude that CRP is a potent activator of the C system at the level of C1, and that polycations such as protamine sulfate are substrates of CRP which can bring about this activation. It seems not unlikely that one role of CRP in health and disease involves its ability to interact with the C system.

Animals↗

Endogenous association of decay-accelerating factor (DAF) with C4b and C3b on cell membranes.

Decay-accelerating factor (DAF) is a membrane glycoprotein found on various cells that are in contact with complement. It inhibits the formation of the C3 convertases of the complement system, both the classic (C4b2a) and alternative (C3bBb) pathways. In this investigation, we used a homobifunctional cross-linking reagent to search for a DAF ligand on the surface of cells subjected to complement attack. We found that DAF forms complexes with C4b and C3b deposited on the same erythrocytes, but not with the physiologic degradation products of these complement fragments, that is, C4d or C3dg. Taken together with prior observations that DAF action is reversible, and DAF does not affect the structure of C4b or C3b, these findings suggest that DAF functions by competitively inhibiting the uptake of C2 or factor B, and preventing the assembly of the C3 convertases.

Animals↗

Association of herpes simplex virus-induced erythema multiforme with the human leukocyte antigen DQw3.

We studied the genetic markers in human leukocyte antigen (HLA) region HLA-A, -B, -C, -DR, -DQ, C2, Bf, C4A, and C4B of 31 patients with erythema multiforme (EM) and their families. In contrast to the complement allotypes, which showed no deviation from the distribution in the normal population, two HLA class II antigens occurred in much higher frequency in patients with EM. The frequency of HLA-DQw3 (77.4%) increased with high significance compared with normal Caucasian control individuals (41.2%). An even stronger DQw3 association was found in the patient group with postherpetic EM (88.8%; relative risk, 9.41). Interestingly, all patients suffering from frequently recurrent EM were found to have the DQw3 allele (relative risk 44.2). The previously reported association to HLA-B15 was also seen and may be due to a linkage disequilibrium with the HLA-DR4 allele (66.6% in recurrent EM). Our data provide further evidence that classic recurrent EM is related to herpes simplex virus infection and should be regarded as a distinct entity within the enigmatic EM syndrome. DQw3 may serve as a helpful marker for distinguishing this entity from other diseases with EM-like lesions.

Adolescent↗

Chemotaxigenesis by cell surface components of Staphylococcus aureus.

In an attempt to delineate the staphylococcal cell surface components of importance in chemotaxigenesis, we incubated intact Staphylococcus aureus H, crude cell walls, purified cell walls, peptidoglycan, teichoic acid, and cell membranes with human sera. The results reported indicate that both crude cell walls and purified cell walls, as well as peptidoglycan, were potent chemotaxigens. These particles led to the generation in normal human serum of a factor that was chemotactic for human polymorphonuclear leukocytes. Cell wall peptidoglycan and teichoic acid both appeared to play a role in chemotaxigenesis. Kinetic studies employing C2-deficient serum and immunoglobulin-deficient serum revealed that optimal chemotaxigenesis required the presence of an intact classical complement pathway, as well as antibody. Granulocyte aggregometry studies showed that significant levels of C5a were generated in normal serum and that this activated complement component appears to be a major chemotactic factor produced in serum upon interaction with staphylococcal cell wall components.

Cell Membrane↗

Role of complement in the aetiology of Pick's disease?

Complement in the postmortem brains of 15 cases of Pick's disease has been widely analyzed immunohistochemically and, in 2 cases, by immunoelectron microscopy. Astrocytes and the Pick bodies and cytoplasm of ballooned neurons were immunoreactive with antibodies to classical pathway components C1, C1q, C4, C2 and C3 and the terminal complex components C5, C6 and C8. In almost all cases, no immunostaining was obtained with antibodies against C9 and neoepitopes in the membrane attack complex (MAC), the complement complex responsible for cytotoxicity. However, unequivocal staining with antibodies to two soluble complement regulatory proteins, S-protein and clusterin, and to the membrane complement inhibitor CD59 was found, although three other membrane inhibitors, CR1(CD35), DAF (CD55), and MCP (CD46), were not detected. The complement immunoreactivity of astrocytes and neurons could be the result of complement biosynthesis or attack. Complement attack will be restricted by the expressed regulatory proteins. However, neurons may be the victims of attack since they show pathological change. The internalization of complement-attacked membrane, perhaps involving the genesis of Pick bodies and ballooning, may explain the intracellular immunolocalization of complement in damaged neurons. Immunoglobulins, as a possible source of complement activation, were observed in only two cases, leaving unresolved the trigger for complement activation in the other cases.

Aged↗

Humoral immunostimulation. IV. Role of complement.

When L cells were treated with anti-L-cell antibody in medium containing heat-inactivated fetal calf serum, nucleoside uptake and cell growth were stimulated. The response was markedly increased when fresh, unheated sera from calves, guinea pigs, humans, mice, or rabbits were also present. The factors in unheated serum responsible for the enhancement of immunostimulation were studied. Using low concentrations of sera deficient in various complement (C) components and low concentrations of antibody no augmentation of immunostimulation was seen with Clr-deficient human serum, C2-deficient human serum, C2,4-deficient human serum, C4-deficient guinea pig serum, C3-C9-depleted guinea pig serum (by administration of cobra venom factor to animals), but stimulation was observed with C5-deficient human serum, C5-deficient mouse serum, and C6-deficient rabbit serum. When the concentration of anti-serum was raised, however, augmentation was observed with C4-deficient guinea pig serum. Thus, at low concentrations of antiserum enhancement appeared to occur through the classical C pathway, whereas at high concentrations of antibody either the classical or alternate C pathways appeared to be involved. Stimulation was specifically restored by purified C2 in C2-deficient serum and by C3 in C3-C9-deficient serum. Under the usual reaction conditions consumption of guinea pig C component C4 could be demonstrated which provided direct evidence for activation of the classical C pathway under conditions leading to immunostimulation. By immunofluorescence, cells treated with antibody and normal human serum had human C3 deposited at the cell surface. Taken together these observations suggest that C activated through C3 by either the classical or alternate pathways has the potential to enhance nucleoside incorporation into DNA and cell growth of cells exposed to limiting amounts of antibody. Although the mechanism of stimulation is unknown, it is likely to involve a direct effect of C3 at the level of the cell membrane.

Animals↗

Complement C7 deficiency presenting as recurrent aseptic meningitis.

BACKGROUND: Complement deficiency states are rare inherited disorders that may predispose affected individuals to angioedema, collagen vascular disease, or infection due to encapsulated organisms, especially Neisseria meningitidis. OBJECTIVES: To report the case of a 36-year-old man of Irish descent with recurrent culture-negative neutrophilic meningitis, to offer potential reasons for the inability to recover a causative pathogen, and to review the genetics and prevalence of complement deficiency states, the methods of screening for such deficiencies, the features of meningococcal infection as they relate to such deficiencies, and management strategies for clinicians caring for patients with such deficiencies. METHODS: The patient presented in 1988 and again in 2002 with culture-negative neutrophilic meningitis. His second episode was characterized by a rash suggestive of meningococcal infection, prompting immunologic evaluation. RESULTS: Immunologic evaluation revealed an undetectable CH50 level. Levels of C1, C2, and C5 through C9 were normal except for C7, which was undetectable. Further testing revealed that the patient's sister was also C7 deficient. CONCLUSIONS: Complement component deficiencies are relatively rare; individuals with collagen vascular disease and systemic neisserial infection should be screened using either the CH50 or the APH-50 assay. Key to the management of a late-complement component-deficient host is counseling, education about meningococcal infection, and discussions about the potential benefits of chemoprophylaxis and immunoprophylaxis. The ability to detect the bacterial cause of meningitis in such patients is organism dependent and may be influenced by factors such as cerebrospinal fluid bacterial concentration and previous antibiotic drug exposure.

Adult↗

Molecular mechanism for feedback regulation of C4 biosynthesis in guinea pig peritoneal macrophage.

Previous reports have shown that regulation of local extrahepatic production of complement may not reflect the regulation of plasma concentrations of the corresponding proteins and, further, that alteration of the tissue microenvironment can affect local macrophage protein synthesis. This report describes the molecular basis for control of the biosynthesis and secretion of a class III major histocompatibility complex gene product, the fourth component of complement (C4), from guinea pig macrophages by extracellular native C4 protein. The effect is specific for C4 synthesis, since production of C2 and total secreted protein was unaffected by fluid phase C4. C4 synthesis by extracellular C4 is regulated at a pretranslational level, without an effect on posttranslational proteolytic cleavage, glycosylation, or secretion. Specific C4 and factor B cDNA probes were used to demonstrate, by dot hybridization and Northern blot analysis, a decrease in messenger RNA coding for C4 that paralleled the inhibition of C4 biosynthesis, while the amount of total RNA and mRNA specific for factor B remained constant. Inhibition of C4 biosynthesis and the disappearance of mRNA encoding C4 occurred between 4 and 6 h after exposure of the macrophages to biologically active or methylamine-inactivated C4 protein. These data demonstrate that regulation of C4 biosynthesis by guinea pig macrophages serves as a model for the study of the molecular mechanisms of macrophage activation as well as the control of production of a component of the inflammatory response.

Animals↗

A component of the medicinal herb ephedra blocks activation in the classical and alternative pathways of complement.

Extracts of the herb Ephedra sinica have long been used in traditional Chinese medicine for the treatment of, among other conditions, acute nephritis. In preliminary studies it was shown that extracts of ephedra caused inhibition of complement in vitro. We thus set out to isolate the active component(s) of this herb, to examine the complement-inhibiting capacity in sera from different species, and to characterize the mechanism(s) by which it inhibits complement. Aqueous extraction of the herb followed by fractionation using thin layer chromatography (TLC) demonstrated that complement-inhibiting activity resided within a single band, hereafter termed the complement-inhibiting component (CIC), which represents an as yet uncharacterized polyanionic carbohydrate molecule. TLC-purified CIC inhibited the classical complement pathway in all species tested (human, pig, guinea pig, rat and rabbit). Using erythrocyte intermediates and sera specifically depleted of individual components it was apparent that CIC inhibited C2. This finding was confirmed using purified human C2, CIC causing a dose-dependent loss of C2 haemolytic activity. At much higher doses, CIC also showed some inhibiting effect in the terminal pathway, and this was shown to be due to inhibition of C9. In the alternative pathway CIC also showed inhibitory activity, although its site of action in this pathway remains unresolved. In Chinese medicine the herb is taken orally, though no studies of complement levels in patients taking the herb have been reported. Preliminary data indicate that oral administration in rats causes a partial inhibition of serum complement activity. Given the current enthusiasm for complement inhibition as a therapy for inflammatory diseases, this non-toxic, naturally occurring agent might be of therapeutic value.

Animals↗

Fluid phase destruction of C2hu by C1hu. II. Unmasking by C4ihu of C1hu specificity for C2hu.

It has been demonstrated that C1 isolated in the unactivated form fails to inactivate C4 or C2 in the fluid phase, while the activated molecule, C1 rapidly converts C4 to hemolytically inactive C4i, but does not efficiently inactivate C2. The production and presence of C4i now confers on C1 the ability to rapidly inactivate C2. After heating at 56 degrees C, so as to destroy the hemolytic activity, heat inactivated C1 is still capable of inactivating C4 but the presence of C4i no longer confers an ability to inactivate C2. Studies with the subunits of C1-C1q, C1r, C1s, indicate that the action of C1s on C2 can be inhibited by C1r and that this inhibition is reversed by the presence of homologous C4. These studies indicate that the interaction of C4i with a heat labile receptor conformation in C1 uncovers a masked specificity for C2.

Animals↗

Characteristics of a non-complement-dependent C3-reactive complex formed form factors in nephritic and normal serum.

When serum from a patient with membrano-proliferative glomerulonephritis and normal serum are mixed at 37 degrees C, C3 is rapidly broken down to two more rapidly migrating components. In the mixture, a heat-labile pseudoglobulin, designated as the C3 nephritic factor or C3NeF, reacts with a pseudogolbulin in the normal serum, designated as cofactor, to form a C3 inactivator. By analogy with the cobra venom factor, the C3 inactivator is most likely a complex of the nephritic factor and cofactor. The complex has been designated as the C3 lytic nephritic factor or C3LyNeF. The reaction which results in the Formation of C3LyNeF requires the presence of Mg(++), is highly temperature sensitive but occurs very rapidly at 37 degrees C. In 20 min at 37 degrees C, C3LyNeF can break down over 80% of the C3 in a mixture of normal and nephritic serum. The two-step reaction which leads to C3 breakdown has an optimum pH ranging from 6.0 to 9.0. Experiments employing serum depleted of C4 and C2, as well as certain characteristics of the C3NeF system provide evidence that C3 breakdown with nephritic serum is not dependent on complement-inactivating immune complexes or on the action of convertase (C4, 2). Data relating rate of C3 breakdown to the concentrations of C3NeF, C3, and C3LyNeF in the reaction mixture are similar to those for the reaction of enzyme with substrate. The biological significance of C3LyNeF in the production of glomerular inflammation has not been established.

Antigen-Antibody Reactions↗

Intestinal glycoprotein activates the alternative complement pathway by reacting with factor H.

Previous observations indicating complement activation via the alternative pathway of chelated human serum by a rat intestinal glycoprotein fraction were substantiated by using C2-deficient serum. Some inactivation of C6 by the glycoprotein was observed both in normal and C2-deficient serum. As estimated by conglutination, the glycoprotein largely abolished the ability of serum to convert EAC3b to EAC3bi, indicating inhibition of the control factors H (beta 1H globulin) and I (C3bINA), or inhibition of C3b deposition on the cells. The glycoprotein caused no change in the electrophoretic mobility of factors H or I. By immunoelectrophoresis the glycoprotein interfered with the precipitation line of plasminogen and beta-lipoprotein and some other serum proteins. The absence of plasminogen or beta-lipoprotein in serum seemed unimportant for the C3 conversion by the glycoprotein. Factor H was retained when heat-inactivated serum, heat-inactivated serum depleted of 99% albumin or 85% IgG, or heat-inactivated hypogammaglobulinaemic serum was eluted through a column of the intestinal glycoprotein coupled to epoxy-activated Sepharose 6B. Presence of EDTA abolished factor H retention. Factor H from methylamine-treated serum was also adsorbed to the glycoprotein. When serum depleted at 5 degrees C or 31% of the factor H content was heated, the alternative pathway was activated spontaneously. Addition of some of the previously removed factor H reduced the C3 and factor B conversion rate.

Animals↗

Investigations on the involvement of the lectin pathway of complement activation in anaphylaxis.

BACKGROUND: Systemic anaphylaxis is the most severe form of immediate hypersensitivity reaction. The activation of the complement system occurs during anaphylactic shock. The purpose of this study was to determine in a mouse model whether the lectin pathway of complement activation is involved in anaphylaxis. METHODS: To see whether the lectin pathway is involved in anaphylactic shock, serum mannan-binding lectin (MBL) levels were measured after passive anaphylaxis. Also MBL expression and binding to potential ligands were investigated. To determine whether complement or mast cell activation is essential for hypothermia in anaphylactic shock, mouse strains deficient in MBL-A and MBL-C, C1q, factors B and C2, C5, C5aR, or mast cells were tested. RESULTS: After antigenic challenge a marked drop in body temperature as well as a rapid decrease in serum MBL levels were observed. The decrease of serum MBL levels in shock could not be attributed to MBL binding to immune complexes or tissues, but an interaction of MBL with mast cell-derived proteoglycans was seen. In contrast to mast cell-deficient mice, none of the complement-deficient mouse strains were protected from shock-associated hypothermia. CONCLUSIONS: These results indicate that neither MBL nor activation of the complement cascade is crucial for the induction of anaphylaxis. In contrast mast cell activation is associated with the development of hypothermia and possibly the observed decrease in serum MBL levels.

Anaphylaxis↗

Activation of the alternative complement pathway by Leishmania promastigotes: parasite lysis and attachment to macrophages.

When exposed to normal human or guinea pig sera, promastigotes of Leishmania enriettii and L. tropica activate the complement cascade by the alternative pathway and fix C3 on their surfaces. In high (25%) serum concentrations, the result of complement activation is parasite lysis. At lower concentrations (4%), complement fixation results in enhanced parasite binding and uptake into murine peritoneal macrophages. Parasites are lysed in normal guinea pig, C4-deficient guinea pig, normal human, and C2-deficient human sera when they are incubated at 37 degrees C for 30 min. Fetal calf and normal mouse sera are poorly lytic. Lysis requires Mg++ but not Ca++, is mediated by heat labile (56 degrees C, 30 min) component(s), and does not occur when the incubations are maintained at 4 degrees C. Guinea pig serum preadsorbed with promastigotes of L. tropica in EDTA at 4 degrees C for 30 min is fully lytic. Immunofluorescence studies with anti-C3 antibodies show that under these conditions C3 is deposited on the surface of the parasite. The serum-dependent binding of parasites to macrophages is also mediated by heat-labile, nonadsorbable factor(s) present in normal guinea pig and mouse sera, as well as C2-deficient and C4-deficient sera. The serum-dependent macrophage recognition mechanism is trypsin sensitive but relatively resistant to chymotrypsin. Parasites but not macrophages can be presensitized at room temperature with low levels (8%) of serum to enhance their binding to macrophages. Presensitization does not occur at 4 degrees C. These results show that Leishmania promastigotes of several species can fix complement by activating the alternative complement pathway. This may then result either in parasite lysis or in an accelerated uptake of the parasite into phagocytic cells. In vivo, the biologic outcome of infection may reflect a balance between extracellular lysis and enhanced uptake into phagocytic cells.

Animals↗

Isolation of histones and related chromatin structures from spermatozoa nuclei of a dasyurid marsupial, Sminthopsis crassicaudata.

The spermatozoa of a dasyurid marsupial, Sminthopsis crassicaudata, have two distinct nuclear regions: uniformly electron-dense chromatin (C1) in the interior and fissured chromatin (C2) at the periphery. To investigate whether the differences in morphology are due to incorporation of different packaging proteins, spermatozoa nuclear proteins were characterised by acetic acid-urea polyacrylamide gel electrophoresis (PAGE) and fractionated by reverse-phase high-pressure liquid chromatography (HPLC). The main protein component was protamine I, but a complete histone complement (H1, H2A, H2B, H3, and H4) was also detected. Immunocytochemistry showed localisation of H4, H2B, and H2A histones to the periphery of the nuclei, a region that corresponded to the C2 chromatin. The fissures in the chromatin of this region disappeared following incubation with fish protamines, indicating that the nucleohistone C2 region may be incompletely condensed relative to nucleoprotamines. This observation is consistent with the view that 60% of phosphodiester charges remain negative in nucleohistone DNA, whereas all DNA charges are neutralised in highly compact nucleoprotamines. Treatment of spermatozoa with micrococcal nuclease showed that the C1 chromatin was resistant to digestion, whereas the C2 region was cleaved into 30- to 38-nm agglomerates and 11-nm nucleosomal-size structures. Thus, this study demonstrates that spermatozoa nuclei of this marsupial species contain peripherally localised histones, and the nucleohistone chromatin accounts for the different morphology of the C2 region compared with the rest of the nucleus.

Amino Acid Sequence↗

Isolation and identification of sex-specific cDNA clones from the Syrian hamster harderian gland.

Syrian hamster Harderian glands show a typical sexual dimorphism, with males having two secretory cell types and females having one cell type and intraluminal porphyrin accretions, among other differences. Since these differences may be due to the expression of specific genes, our interest is to identify those genes and their role on the development and control of the sexual dimorphism. The experimental approach was to construct cDNA libraries for male and female Syrian hamster Harderian glands and then subtracted libraries for male vs. female and for female vs. male. By this method, cDNA libraries enriched either in male-specific or in female-specific clones were obtained. Clones from those libraries were checked for differential expression by using double colony hybridization with [32P]-cDNA from male and female glands. Then, the selected clones were checked again for expression in Harderian glands by Northern hybridization, using poly(A+) RNA from males, castrated males, and females. Finally, the clones were sequenced and compared to search for significant homologies. One of the male-specific clones showed strong homology with rat cytochrome p450b/e. Among the female-specific clones, homologies were found to the complement C3 fragment from several species, to sequences from the mouse mammary tumor virus, and to the subunits C1 and C2 of the rat prostatic steroid binding protein. Several other clones showed no significant homologies and need further characterization.

Animals↗

Studies on the human T cell receptor alpha/beta variable region genes. II. Identification of four additional V beta subfamilies.

The human T cell receptor (TcR) beta chain gene segment diversity has been studied using the anchored-polymerase chain reaction. Three hundred and fifty C beta-specific transcripts derived from peripheral lymphocytes were analyzed. Transcripts including V-D beta 1-J beta 2-C2 sequences were found with a high frequency (greater than 10%), suggesting that "illegitimate" joinings may constitute a cis-complementing rearrangement mechanism capable of substantially increasing the TcR beta chain combinatorial diversity. Twelve previously undescribed V beta gene segments have been identified. Five of them delineate four novel V beta subfamilies (V beta w21: two members, V beta w22, 23, 24: one member) which all have a murine homologue. The additional seven gene segments belong to the V beta 5, V beta 6, V beta 12 and V beta 13 subfamilies. In addition, the sequences of two known V beta 7 and V beta 9 gene segments have been extended. Together, the present data support the view that the contribution of the beta chain combinatorial diversity to the TcR alpha/beta variability has not yet been fully appreciated.

Base Sequence↗